On-line magnetic resonance measurement of conveyed material
US-2018238976-A1 · Aug 23, 2018 · US
US11740191B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11740191-B2 |
| Application number | US-202017788824-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 23, 2020 |
| Priority date | Dec 24, 2019 |
| Publication date | Aug 29, 2023 |
| Grant date | Aug 29, 2023 |
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Apparatus for the measurement of ore in mine haul vehicles is disclosed, the apparatus comprising: a portal, defining a portal zone, wherein a haul vehicle carrying ore is positionable in or movable through the portal zone; and at least one magnetic resonance (MR) sensor comprised in the portal. The MR sensor includes a main loop and a drive loop located above the main loop. A magnetic resonance sensor control system is provided and configured to control at least one of: the positioning of the at least one MR sensor relative to the portal zone and/or ore burden; the positioning of elements comprised in the MR sensor relative to each other; electromagnetic suppression characteristics of the at least one MR sensor; and/or sensitivity of the at least one MR sensor as a function of distance of the sensor from the ore burden.
Opening claim text (preview).
The invention claimed is: 1. An apparatus for the measurement of ore in mine haul vehicles, the apparatus comprising: a portal, defining a portal zone, wherein a haul vehicle carrying ore is positionable in or movable through the portal zone, at least one magnetic resonance (MR) sensor positioned in the portal, the magnetic resonance sensor comprising: a main loop positionable in the portal zone above or on an ore burden carried by the haul vehicle, a drive loop located above the main loop and electrically isolated from and magnetically coupled to the main loop, wherein a radio frequency (RF) transmitter is couplable to a feed terminal of the drive loop to drive an RF drive current in the drive loop and a radio frequency receiver is couplable to the drive loop to monitor an RF response current in the drive loop; the apparatus further comprising: a magnetic resonance sensor control system configured to control at least one of: positioning the at least one MR sensor relative to the portal zone and/or the ore burden; positioning the main loop relative to the drive loop; electromagnetic suppression characteristics of the at least one MR sensor; and/or sensitivity of the at least one MR sensor as a function of distance of the sensor from the ore burden. 2. The apparatus of claim 1 , wherein the main loop comprises a plurality of conductive segments and capacitors positioned between the conductive segments. 3. The apparatus of claim 2 , wherein the capacitors are evenly spaced along the main loop and capacitance of each capacitor is substantially equal. 4. The apparatus of claim 2 , wherein the capacitance of at least one of the capacitors of the main loop is adjustable. 5. The apparatus of claim 4 , wherein the sensor control system is configured to adjust the capacitance of at least one of the capacitors of the main loop. 6. The apparatus of claim 5 , further comprising an impedance monitor to monitor reactive impedance at the feed terminal of the drive loop, wherein the sensor control system adjusts the capacitance based on the monitored reactive impedance. 7. The apparatus of claim 6 , wherein the sensor control system is configured to adjust the capacitance so that the reactive impedance at the feed terminal of the drive loop is at a target reactive impedance. 8. The apparatus of claim 2 , wherein the conductive segments and capacitors of the main loop extend along a looped path and, in cross-section, in a plane perpendicular to the looped path, the conductive segments have a non-circular cross-sectional shape. 9. The apparatus of claim 8 , wherein the non-circular shape is: a shape having a convex border and an opposing concave border; or a shape having a convex border and an opposing concave border wherein the convex border is at a radially outer side of the main loop and the concave border is at a radially inner side of the main loop; or a crescent shape, a kidney-shape, or a crescent shape formed by two-intersecting ellipses. 10. The apparatus of claim 1 , wherein the sensor control system is configured to adjust: a position and/or orientation of the at least one MR sensor relative to the ore burden; and/or a position and/or orientation of the drive loop relative to the main loop. 11. The apparatus of claim 10 , further comprising an impedance monitor to monitor resistive impedance at the feed terminal of the drive loop, wherein the sensor control system adjusts: the position and/or orientation of the at least one MR sensor relative to the ore burden based on the monitored resistive impedance; and/or the position and/or orientation of the drive loop relative to the main loop based on the monitored resistive impedance. 12. The apparatus of claim 11 , wherein the sensor control system adjusts the position and/or orientation so that the resistive impedance at the feed terminal of the drive loop is at a target resistive impedance. 13. The apparatus of claim 12 , wherein the sensor control system adjusts the position and/or orientation of the at least one sensor relative to the ore burden such that the resistive impedance at the feed terminal of the drive loop is within a predetermined resistive impedance range and subsequently adjusts the position and/or orientation of the drive loop relative to the main loop such that the resistive impedance at the feed terminal of the drive loop is at the target resistive impedance. 14. The apparatus of claim 10 , comprising a displacement monitor to monitor a displacement between the at least one MR sensor and the ore burden. 15. The apparatus of claim 14 , wherein the sensor control system adjusts the position and/or orientation based on the monitored displacement. 16. The apparatus of claim 15 , wherein the sensor control system adjusts the position and/or orientation based on the monitored displacement to maintain a fixed separation between the ore burden and the main loop. 17. The apparatus of claim 1 further comprising a passive loop located above the main loop or in the plane of the main loop, the passive loop suppressing external electromagnetic interface in the main loop. 18. The apparatus of claim 17 , further comprising a reflector positioned above the main loop, the reflector being configured to reduce radiation and magnetic near field in an upward direction from the ore burden, wherein the reflector is located between the main loop and the passive loop. 19. The apparatus of claim 17 , wherein the passive loop has a capacitive lump impedance that is adjustable by the sensor control system to optimise suppression of external electromagnetic interface in the main loop. 20. The apparatus of claim 19 further comprising a noise monitor to monitor RF noise voltage at the feed terminal of the drive loop, wherein the sensor control system is configured to adjust the capacitive lump impedance of the passive loop based on the monitored RF noise voltage to minimise the RF noise voltage at the feed terminal of the drive loop. 21. The apparatus of claim 1 further comprising a resistive loop magnetically coupled to the main loop and terminated with a resistance, wherein the sensor control system is configured to adjust an orientation of the resistive loop relative to the main loop. 22. The apparatus of claim 21 , comprising an impedance monitor to monitor resistive impedance at the feed terminal of the drive loop and wherein the sensor control system is configured to adjust the orientation of the resistive loop relative to the main loop based on the monitored resistive impedance such that the resistive impedance at the feed terminal of the drive loop is at the target resistive impedance. 23. The apparatus of claim 1 further comprising an insert that is positioned radially inside of the main loop, in a plain of the main loop, wherein the insert is an oblate spheroid. 24. The apparatus of claim 1 , wherein the haul vehicle is a truck, a Load-Haul-Dump (LHD) vehicle, a skip, a wagon or a cart. 25. The apparatus of claim 1 further comprising a portal control system, wherein the portal control system is configured to control movement of the haul vehicle through the portal zone of the portal. 26. The apparatus of claim 1 , wherein to control the sensitivity of the at least one MR sensor as a function of distance of the sensor from the ore burden, the sensor control system is configured to: control application of at least one RF pulse sequence to
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